1 |
李凯, 赵基钢, 沈本贤, 等. NiO/ZnO-Al2O3-SiO2吸附剂反应吸附脱硫机理 [J]. 化工学报, 2017, 68(8): 3089-3099.
|
|
Li K, Zhao J G, Shen B X, et al. Mechanism of reactive adsorption desulfurization over NiO/ZnO-Al2O3-SiO2 adsorbents [J]. CIESC Journal, 2017, 68(8): 3089-3099.
|
2 |
宋红艳, 何静, 李春喜. 燃料油深度脱硫的技术策略及研究进展 [J]. 石油化工, 2015, 44(3): 279-286.
|
|
Song H Y, He J, Li C X. Technical strategies and recent advances for deep desulfurization of fuel oils [J]. Petrochem. Techn., 2015, 44(3): 279-286.
|
3 |
王鑫博, 张延平, 李秀萍, 等. EMIES/n-C9H10O2基低共熔溶剂的制备及其氧化脱硫活性的研究 [J]. 化工学报, 2019, 70(4): 1567-1574.
|
|
Wang X B, Zhang Y P, Li X P, et al. Preparation of EMIES/n-C9H10O2-based deep eutectic solvents and its oxidative desulfurization activity [J]. CIESC Journal, 2019, 70(4): 1567-1574.
|
4 |
Zhang H X, Gao J J, Meng H, et al. Catalytic oxidative desulfurization of fuel by H2O2in situ produced via oxidation of 2-propanol [J]. Ind. Eng. Chem. Res., 2012, 51(13): 4868-4874.
|
5 |
Pawelec B, Navarro R, Camposmartin J, et al. Towards near zero-sulfur liquid fuels: a perspective review [J]. Catal. Sci. Technol., 2011, 1(1): 23-42.
|
6 |
方静, 张淑婷, 李婷婷, 等. 离子液体用于燃油萃取脱硫的选择与过程优化 [J]. 化工学报, 2017, 68(9): 3434-3441.
|
|
Fang J, Zhang S T, Li T T, et al. Selection and process optimization of ionic liquids for desulfurization [J]. CIESC Journal, 2017, 68(9): 3434-3441.
|
7 |
于维钊, 郑经堂, 何小超, 等. 负载金属球形活性炭的制备及其噻吩吸附性能 [J]. 化工学报, 2008, 59(11): 2824-2829.
|
|
Yu W Z, Zheng J T, He X C, et al. Synthesis of spherical activated carbon loaded with metal particles and its performance of thiophene adsorption [J]. Journal of Chemical Industry and Engineering(China), 2008, 59(11): 2824-2829.
|
8 |
潘兴朋, 吴相英, 杜君, 等. 碱处理Beta分子筛吸附脱硫动力学[J]. 化工学报, 2016, 67(9): 3747-3754.
|
|
Pan X P, Wu X Y, Du J, et al. Kinetics of adsorptive desulfurization over alkaline-treated Beta zeolite [J]. CIESC Journal, 2016, 67(9): 3747-3754.
|
9 |
Kim J H, Ma X, Zhou A, et al. Ultra-deep desulfurization and denitrogenation of diesel fuel by selective adsorption over three different adsorbents: a study on adsorptive selectivity and mechanism [J]. Catal. Today, 2006, 111(1/2): 74-83.
|
10 |
Song C. An overview of new approaches to deep desulfurization for ultra-clean gasoline, diesel fuel and jet fuel [J]. Catal. Today, 2003, 86(1/2/3/4): 211-263.
|
11 |
Hernández-Maldonado A J, Yang R T. Desulfurization of liquid fuels by adsorption via π complexation with Cu (I)-Y and Ag-Y zeolites [J]. Ind. Eng. Chem. Res., 2003, 42(1): 123-129.
|
12 |
Velu S, Ma X, Song C. Selective adsorption for removing sulfur from jet fuel over zeolite-based adsorbents [J]. Ind. Eng. Chem. Res., 2003, 42(21): 5293-5304.
|
13 |
余谟鑫, 李忠, 方健才, 等. 活性炭用于柴油深度脱硫研究进展[J]. 工业催化, 2008, 16(5): 1-5.
|
|
Yu M X, Li Z, Fang J C, et al. Advances in deep desulfurization of diesel by activated carbon [J]. Ind. Catal., 2008, 16(5): 1-5.
|
14 |
Ania C O, Bandosz T J. Importance of structural and chemical heterogeneity of activated carbon surfaces for adsorption of dibenzothiophene [J]. Langmuir, 2005, 21(17): 7752-7759.
|
15 |
Li W, Li Y, Chen Y, et al. Adsorptive desulfurization of diesel oil by alkynyl carbon materials derived from calcium carbide and polyhalohydrocarbons [J]. Energy Fuels, 2017, 31(9): 9035-9042.
|
16 |
Zhang J, Xu H, Lu Y, et al. Adsorptivity of a hyper cross-linked ionic polymer poly (vinyl imidazole)-1, 4-bis (chloromethyl) benzene for thiophenic sulfurs in model oil [J]. Energy Fuels, 2016, 30(6): 5035-5041.
|
17 |
李春喜, 熊佳丽, 孟洪, 等.从ILs到PILs: 聚合离子液体介孔材料的制备性质及结构调控方法[J]. 化工进展, 2014, 33(8): 1941-1950.
|
|
Li C X, Xiong J L, Meng H, et al. From ILs to PILs: synthesis and structure tuning of poly ionic liquids mesoporous materials [J]. Chem. Ind. Eng. Progress, 2014, 33(8): 1941-1950.
|
18 |
Ahmed I, Jhung S H. Adsorptive desulfurization and denitrogenation using metal-organic frameworks [J]. J. Hazard. Mater., 2016, 301: 259-276.
|
19 |
Li Q, Lu Y, Meng H, et al. CuSiF6 (4, 4′-bipyridine)2, a crystalline complex with excellent adsorptivity for thiophenic sulfur compounds in model oil [J]. Energy Fuels, 2018, 32(1): 696-702.
|
20 |
Gao J, Li H, Zhang H, et al. Removal mechanism of thiophenic compounds in model oil by inorganic Lewis acids [J]. Ind. Eng. Chem. Res., 2012, 51(12): 4682-4691.
|
21 |
Gao J, Meng H, Lu Y, et al. A carbonium pseudo ionic liquid with excellent extractive desulfurization performance [J]. AIChE Journal, 2013, 59(3): 948-958.
|
22 |
Gao J, Dai Y, Ma W, et al. Efficient separation of phenol from oil by acid–base complexing adsorption [J]. Chem. Eng. J., 2015, 281: 749-758.
|
23 |
Gao J, Zhu S, Dai Y, et al. Performance and mechanism for extractive desulfurization of fuel oil using modified polyethylene glycol [J]. Fuel, 2018, 233: 704-713.
|
24 |
Meille V, Schulz E, Vrinat M, et al. A new route towards deep desulfurization: selective charge transfer complex formation [J]. Chem. Comm., 1998, (3): 305-306.
|
25 |
Milenkovic A, Schulz E, Meille V, et al. Selective elimination of alkyldibenzothiophenes from gas oil by formation of insoluble charge-transfer complexes [J]. Energy Fuels, 1999, 13(4): 881-887.
|
26 |
Grimme S. Do special noncovalent π–π stacking interactions really exist? [J]. Angew. Chem. Int. Ed., 2008, 47(18): 3430-3434.
|
27 |
Sévignon M, Macaud M, Favre-Réguillon A, et al. Ultra-deep desulfurization of transportation fuels via charge-transfer complexes under ambient conditions [J]. Green Chem., 2005, 7(6): 413-420.
|
28 |
Favre-Réguillon A, Sévignon M, Rocault M, et al. Deep desulfurization of diesel feedstock by selective adsorption of refractory sulfur compounds [J]. Ind. Eng. Chem. Res., 2008, 47(23): 9617-9622.
|
29 |
Misra P, Badoga S, Chenna A, et al. Denitrogenation and desulfurization of model diesel fuel using functionalized polymer: charge transfer complex formation and adsorption isotherm study [J]. Chem. Eng. J., 2017, 325: 176-187.
|
30 |
Armaghan M, Amini M M, Khavasi H R, et al. Inorganic-organic hybrid sorbent for aromatic desulfurization of hydrocarbons: regenerative adsorption based on a charge-transfer complex [J]. RSC Adv., 2016, 6(88): 85381-85389.
|
31 |
陈博, 孟洪, Muhammad Y, et al. 改性活性炭对模拟柴油中噻吩类硫化物的吸附性能[J]. 离子交换与吸附, 2011, 27(2): 137-144.
|
|
Chen B, Meng H, Muhammad Y, et al. Adsoroption performance of modified activated carbon for thiophene derivatives in simulative diesel oil system [J]. Ion Exchange and Adsorption, 2011, 27(2): 137-144.
|
32 |
Blanco-Brieva G, Campos-Martin J M, Al-Zahrani S M, et al. Effectiveness of metal-organic frameworks for removal of refractory organosulfur compound present in liquid fuels [J]. Fuel, 2011, 90(1): 190-197.
|
33 |
Wu J, Zhang W, Ma C, et al. Isolation and characterization of sulfur compounds in a lacustrine crude oil [J]. Fuel, 2019, 253: 1482–1489.
|
34 |
Zhou A, Ma X, Song C. Liquid-phase adsorption of multi-ring thiophenic sulfur compounds on carbon materials with different surface properties [J]. J. Phys. Chem. B, 2006, 110(10): 4699-4707.
|
35 |
Khan N A, Jhung S H. Low-temperature loading of Cu+ species over porous metal-organic frameworks (MOFs) and adsorptive desulfurization with Cu+-loaded MOFs [J]. J. Hazard. Mater., 2012, 237: 180-185.
|
36 |
Schnobrich J K, Lebel O, Cychosz K A, et al. Linker-directed vertex desymmetrization for the production of coordination polymers with high porosity[J]. J. Am. Chem. Soc., 2010, 132(39): 13941-13948.
|